The present invention relates generally to tools, and particularly to wrenches and podgers, including a handle portion comprising carbon fibers and resins, and an insert portion for engaging a bolt, nut, or similar structure. The insert will be formed of an essentially hardened material, and in many examples will be formed of metal, or a metal-containing material.
Various configurations have been proposed for manufacturing wrenches and podgers with handles or other components formed of a composite material.
Patent FR2798087A discloses a composite tool handle which consists of a primary tool body, e.g. a spanner, which is made of steel alloy and has an external periphery, which is designed to fit into and be covered by the secondary body, which is made of carbon or glass fiber material. The handle may have a core body with a separate surface covering.
U.S. Pat. No. 5,062,328 discloses a plastic wrench consisting of a handle and a gripping head, having a polygonal opening in which there is embedded an open metal insert, likewise polygonal, and the walls of which form grip ping jaws, wherein the walls of the insert forming the jaw are parallel and protrude slightly from the lateral faces of the openings of each gripping head, wherein the metal insert is made from a hard, flexible and resilient metal having a coefficient of hardness of between and 50 HRC, and wherein, in the region of the jaws, the thickness E2 of the insert is between 0.5 and 0.7 times the thickness E1 of the gripping head.
U.S. Pat. No. 5,657,674 discloses a composite hammer is provided having enhanced vibration dampening characteristics. In one aspect of the invention, the composite hammer includes a handle having an elongated body and a cradle attached to a terminal end of the body. An elastomeric member substantially encapsulates the cradle and at least partially encapsulates a head structure to thereby secure the head structure to said handle. In another aspect of the invention, the hammer includes a substantially rigid elongated body having a chamber therein. An elastomeric material filler is positioned within the chamber of the hammer body to thereby enhance the vibration dampening characteristics of said hammer.
Patent application US 2003/0154829 A1 discloses a hand tool with a composite handle includes a first body made of a steel alloy having a skeletal extension protruding from one end, and a second body coated on the outer periphery of the skeletal extension. The second body is made of composite material such as carbon fiber, fiberglass or the like. The composite material lighter than the steel alloy so that the hand tool is convenient to use. The composite material is a good insulator that can effectively prevent the user from getting an electric shock.
Lastly, patent application US 20150101459 A1 discloses wrenches having a portion thereof including carbon fibers. Example wrenches may have a handle portion comprising the carbon fibers; which in some cases can be formed as a part of a composite laminate structure of at least a portion of the handle. Example wrenches will often include an insert portion for engaging a bolt, nut, or similar structure. In most cases, the insert will be formed of a relatively hardened material, such as a metal, or a metal-containing, material.
The main downside of all the above mentioned disclosures is that such devices do not provide tools with lower weights without compromising the strength of the tool and the resistance to high pressures and forces required to be applied on such tools. Therefore, there is a long felt need for a tool, like a wrench or a podger, which is light, strong and capable to resist the great pressures and forces required to be applied to those tools.
It is hence one object of the invention to disclose a tool, comprising: a handle portion at least partially made of carbon fibers composite laminates, having a proximal end and a distal end interconnected by a main longitudinal axis X:X; said handle is characterized by at least one inner core; and, at least one outer envelope at least partially enclosing said inner core; at least one head portion in mechanical communication with said handle portion; wherein at least one of the following is being held true: said inner core is characterized by at least one unidirectional carbon fiber oriented parallel to said main longitudinal axis X:X; said outer envelope is characterized by at least one carbon fiber composite laminate oriented at an angle A relatively to said main longitudinal axis X:X; said inner core is characterized by at least one carbon fiber oriented at an angle B relatively to said main longitudinal axis X:X; any combination thereof.
Another object of the present invention is to disclose the tool wherein said head portion is made of at least one element selected from a group consisting of metal, glass, plastic, graphene, diamond, composite materials and any combination thereof.
Another object of the present invention is to disclose the tool wherein said tool additionally comprising at least one actuation portion.
Another object of the present invention is to disclose the tool wherein said actuation portion allocated within at least one end selected from a group consisting of said proximal end, said distal end and any combination thereof.
Another object of the present invention is to disclose the tool wherein said actuation portion is made of at least one element selected from a group consisting of metal, glass, plastic, graphene, diamond, composite materials and any combination thereof.
Another object of the present invention is to disclose the tool wherein A is in the range of about degrees to about 60 degrees.
Another object of the present invention is to disclose the tool wherein B is in the range of about 0 degrees to about 180 degrees.
Another object of the present invention is to disclose the tool wherein A is about 45 degrees.
Another object of the present invention is to disclose the tool wherein B is about 0 degrees.
Another object of the present invention is to disclose the tool wherein said carbon fiber composite laminate at least partially encapsulate said head portion.
Another object of the present invention is to disclose the tool wherein said head portion at least partially encapsulate said carbon fiber composite laminate.
Another object of the present invention is to disclose the tool wherein said carbon fiber composite laminate at least partially encapsulate said actuation portion;
Another object of the present invention is to disclose the tool wherein said actuation portion at least partially encapsulate said carbon fiber composite laminate.
Another object of the present invention is to disclose the tool wherein said head portion is adapted to engage a bolt object.
Another object of the present invention is to disclose the tool wherein said actuation portion is adapted to engage a bolt object.
Another object of the present invention is to disclose the tool wherein said actuation portion is adapted to be stroked by a hand tool or a powered tool.
Another object of the present invention is to disclose the tool wherein the power of said powered tool is selected from a group consisting of: electricity, magnetic field, wind, solar, hydro, chemical, heat, nuclear, batteries, steam, pneumatic, pressure and any combination thereof.
Another object of the present invention is to disclose the tool wherein said handle portion is essentially straight.
Another object of the present invention is to disclose the tool wherein said handle portion is essentially not straight.
Another object of the present invention is to disclose the tool wherein said tool further comprise a vibration dampening member.
It is hence one object of the invention to disclose a method for manufacturing a tool comprising the steps of: forming a handle portion at least partially made of carbon fibers composite laminates, having a proximal end and a distal end interconnected by a main longitudinal axis X:X; said handle is characterized by at least one inner core; and, at least one outer envelope at least partially enclosing said inner core; forming at least one head portion in mechanical communication with said handle portion; wherein at least one of the following is being held true: said inner core is characterized by at least one unidirectional carbon fiber oriented parallel to said main longitudinal axis X:X; said outer envelope is characterized by at least one carbon fiber composite laminate oriented at an angle A relatively to said main longitudinal axis X:X; said inner core is characterized by at least one carbon fiber oriented at an angle B relatively to said main longitudinal axis X:X; any combination thereof.
Another object of the present invention is to disclose the method wherein said head portion is made of at least one element selected from a group consisting of metal, glass, plastic, graphene, diamond, composite materials and any combination thereof.
Another object of the present invention is to disclose the method wherein said tool additionally comprising at least one actuation portion.
Another object of the present invention is to disclose the method wherein said actuation portion allocated within at least one end selected from a group consisting of said proximal end, said distal end and any combination thereof.
Another object of the present invention is to disclose the method wherein said actuation portion is made of at least one element selected from a group consisting of metal, glass, plastic, graphene, diamond, composite materials and any combination thereof.
Another object of the present invention is to disclose the method wherein A is in the range of about degrees to about 60 degrees.
Another object of the present invention is to disclose the method wherein B is in the range of about 0 degrees to about 180 degrees.
Another object of the present invention is to disclose the method wherein A is about 4 degrees.
Another object of the present invention is to disclose the method wherein B is about 0 degrees.
Another object of the present invention is to disclose the method wherein said carbon fiber composite laminate at least partially encapsulate said head portion.
Another object of the present invention is to disclose the method wherein said head portion at least partially encapsulate said carbon fiber composite laminate.
Another object of the present invention is to disclose the method wherein said carbon fiber composite laminate at least partially encapsulate said actuation portion;
Another object of the present invention is to disclose the method wherein said actuation portion at least partially encapsulate said carbon fiber composite laminate.
Another object of the present invention is to disclose the method wherein said head portion is adapted to engage a bolt object.
Another object of the present invention is to disclose the method wherein said actuation portion is adapted to engage a bolt object.
Another object of the present invention is to disclose the method wherein said actuation portion is adapted to be stroked by a hand tool or a powered tool.
Another object of the present invention is to disclose the method wherein the power of said powered tool is selected from a group consisting of: electricity, magnetic field, wind, solar, hydro, chemical, heat, nuclear, batteries, steam, pneumatic, pressure and any combination thereof.
Another object of the present invention is to disclose the method wherein said handle portion is essentially straight.
Another object of the present invention is to disclose the method wherein said handle portion is essentially not straight.
Another object of the present invention is to disclose the method wherein said tool further comprise a vibration dampening member.
The following description is provided, so as to enable any person skilled in the art to make use of the invention and sets forth the best modes contemplated by the inventor of carrying out this invention. Various modifications, however, are adapted to remain apparent to those skilled in the art, since the generic principles of the present invention have been defined specifically to provide a tool that is also light and also adapted to endure the great stresses required.
The term “about” refers hereinafter as ±25% of the specified value.
The term “bolt object” refers hereinafter to any of a bolt head (of any shape, such a 4-sided, 6-sided, etc.), a nut for a bolt (which may again have any suitable number of sides or “flats”), or any bolt head like-mechanism, having a plurality of sides which are intended to be engaged to facilitate rotation, or restriction from rotation, of the mechanism.
The term “Young's Modulus” (also known as the tensile modulus or elastic modulus) refers hereinafter to the mechanical property of linear elastic solid materials. It measures the force (per unit area) that is needed to stretch (or compress) a material sample. Therefore, the Young's modulus is a measure of the stiffness of a solid material.
The term “stiffness” refers hereinafter to the rigidity of an object—the extent to which it resists deformation in response to an applied force. The complementary concept is flexibility or pliability: the more flexible an object is, the less stiff it is.
The term “strength” refers hereinafter to the amount of force it can withstand and still recover its original shape.
The term “hardness of a material” refers hereinafter to the relative resistance that its surface imposes against the penetration of a harder body.
The term “toughness” refers hereinafter to the amount of energy that a material can absorb before fracturing.
One example of a high tensile steel used in the manufacturing of tools is the “4140 HIGH TENSILE STEEL” (refer hereinafter as 4140). 4140 is a 1% chromium—molybdenum medium hardenability general purpose high tensile steel—generally supplied hardened and tempered in the tensile range of 850-1000 Mpa (condition T). 4140 is now available with improved machinability, which greatly increases feeds and/or speeds, while also extending tool life without adversely affecting mechanical properties. Pre-hardened and tempered 4140 can be further surface hardened by flame or induction hardening and by nitriding. 4140 is used extensively in most industry sectors for a wide range of applications such as: Adapters, Arbors, Axle Shafts, Bolts, Crankshafts, Connection Rods, Chuck Bodies, Collets, Conveyor Pins and Rolls, Ejector Pins, Forks, Gears, Guide Rods, Hydraulic Shafts and Parts, Lathe Spindles, Logging Parts, Milling Spindles, Motor Shafts, Nuts, Pinch Bars, Pins Various, Pinions, Pump Shafts, Rams, Sockets, Spindles, Sprockets, Studs, Tool Holders, Torsion Bars, Worms, etc.
A Carbon Fiber is a fibrous carbon material having a micro graphite crystal structure made by fibrillation of Acrylic resin, a well-known textile material, or from oil/coal pitch and then by being given a certain heat treatment (http://www.carbonfiber.gr.jp/english/material/what.html)—incorporated herein as reference.
Carbon fibers, under industrial production now, are classified into PAN-based, pitch-based and rayon-based. Among them, PAN-based carbon fiber is in the largest production and best used in volume. In the beginning of 1970's, commercial production of PAN-based and isotropic pitch-based carbon fibers was started on a large scale. In the latter half of 1980's, anisotropic pitch-based carbon fiber manufacturers broke into the market.
Usage of carbon fiber by itself is not the rule. Commonly, customers apply carbon fibers for reinforcement and/or functionality of composite materials, made with resin, ceramic or metal as matrix. Carbon fibers are extensively applied to a large variety of applications with supreme mechanical characteristics (specific tensile strength, specific modulus) and other characteristics due to carbon matter (low density, low coefficient of thermal expansion, heat resistance, chemical stability, self-lubricity, etc.).
Carbon Fibers, having supreme characteristics, are adopted in wide varieties of uses. Suppliers are able to provide, by using different raw material and applying divergent production processes, wide diversity of the fibers having different specifications. Please find below diversified types and respective features of the fibers.
PAN Type Carbon Fiber: A type of the fiber, produced by carbonization of PAN precursor (PAN: Polyacrylonitrile), having high tensile strength and high elastic modulus, extensively applied for structural material composites in aerospace and industrial field and sporting/recreational goods.
Pitch Type Carbon Fiber: Another type of the fiber, produced by carbonization of oil/coal pitch precursor, having extensive properties from low elastic modulus to ultra-high elastic modulus. Fibers with ultra-high elastic modulus are extensively adopted in high stiffness components and various uses as utilizing high thermal conductivity and/or electric conductivity.
Tensile elastic modulus: 600 GPa or higher/Tensile strength: 2,500 MPa or higher
Tensile elastic modulus: 350-600 GPa/Tensile strength: 2,500 MPa or higher
Tensile elastic modulus: 280-350 GPa/Tensile strength: 3,500 MPa or higher
Tensile elastic modulus: 200-280 GPa/Tensile strength: approximately 2,500 MPa or higher
Tensile elastic modulus: 200 GPa or lower/Tensile strength: 3,500 MPa or lower
There are two types of Carbon Fibers: Filament and Staple. In the subsequent processing, the fibers are given varieties, shown in
The fibers have low specific gravity, exquisite mechanical properties (high specific tensile strength, high specific elastic modulus, etc.) and attractive performances (electric conductivity, heat resistance, low thermal expansion coefficient, chemical stability, self-lubrication property, high heat conductivity, etc.).
Carbon Fiber Reinforced Plastics (CFRP) is superior to steel or glass fiber reinforced plastics (GFRP) in its specific tensile strength and specific elastic modulus (specific rigidity). That is to say, CFRP is “Light in Weight and Strong” in its mechanical performances. Moreover, fatigue resistance of Carbon Fiber surpasses that of other structural materials, as can be seen in
Carbon Fiber customers have developed wide varieties of usage of the fibers making best use of the fibers' favorable properties as presented below.
Carbon fiber reinforcement is available as a woven fabric, rovings or unidirectional fabric (http://www.easycomposites.co.uk/Learning/Carbon-Fibre-Cloth-Explained.aspx, incorporated herein as reference).
Woven fabric is the most common and versatile way to work with carbon fiber. Typically bunches of carbon fiber strands (yarn) are woven bi-directionally (the weft and the warp). The manner in which the weft and the warp are interwoven is the weave pattern.
The most commonly used weave pattern for carbon fibre is ‘2/2 Twill’, as shown in
Plain weave fabric is the second most widely used of the woven carbon fabrics, as shown in
Braids are continuous tubes (or sleeves) of woven carbon fabric. Elongating the braid (stretching it out) will reduce its diameter, allowing braids to be adjusted to be a perfect fit around mandrels or into tubes of varying diameter.
Tapes are simply thin strips (usually supplied on a roll) of woven carbon fabric, most commonly plain weave. Tapes of woven carbon fiber are useful for providing localized reinforcement without the need to cut down large pieces of fabric.
Satin weave, harness weave, fish weave etc. are all different weave patterns for carbon fabric although they are used much less widely than 2/2 Twill and Plain Weave. In advanced composites there are almost no situations where these weave patterns are used or are advantageous and so unless you have a very unusual requirement you are unlikely to need or encounter these more obscure weaves.
Rovings is the name given to the “bunches” of carbon fibers that are usually woven into fabrics. Unwoven rovings are sometimes used as localized reinforcement where they are often wound around a repair.
Unidirectional carbon fiber is a reinforcement where all (or almost all) of the carbon fibers are aligned in the same direction. The only thing holding the fibers together will be occasional strands of either carbon or polyester running across the fibers at 90 degrees. Unidirectional material is used in applications where all of the forces on a part will be in one direction (such as the body of an archery bow). Alternate layers of unidirectional fibers can be positioned with different orientation to allow any combination of bias for the strength of the part to be achieved.
In one embodiment of the present invention, any kind of the aforementioned carbon fibers can be used.
The main principle of the present invention is to provide a tool that is very strong and is very light, in comparison to similar made-of-steel tools.
In one embodiment, the technological design of the tool provides the later with the strength necessary to endure the high forces applied to the same.
Referring now to
Referring now to
The combination of the different areas in the predetermined order confers the strength necessary to the tool. Furthermore, it is this specific design of these areas that enable the manufacture of such long and strong tool.
Referring now to
Referring now to
In one embodiment, the body/handle portion is made by a core of unidirectional carbon fibers in order to confer the necessary linear strength necessary for a tool.
In one embodiment, the core is at least partially enclosed by an outer enveloped made of carbon fibers fabrics, laid in a direction different of those of the unidirectional carbon fibers, in order to confer the necessary lateral strength for a tool.
In one embodiment, the head portion is made of at least one element selected from a group consisting of metal, glass, plastic, graphene, diamond, composite materials and any combination thereof.
In one embodiment, the tool may comprise an additional actuation portion that may be located at any portion of the body/handle portion. The actuation portion is made of at least one element selected from a group consisting of metal, glass, plastic, graphene, diamond, composite materials and any combination thereof.
The actuation portion can be useful to allow interaction with other tools, without damaging the tool in question.
In one embodiment, said other tools can be hand used or powered used. Said tools may comprise, but not limited to: hammers, impact tools.
In another embodiment, said powered tool is selected from a group consisting of: electricity, magnetic field, wind, solar, hydro, chemical, heat, nuclear, batteries, steam, pneumatic, pressure and any combination thereof.
In one embodiment, the tool may further comprise a vibration dampening member.
It is clear that by these examples that any tool can be manufactured using these principals.
It will be evident to those skilled in the art that the invention is not limited to the details of the foregoing illustrated embodiments and that the present invention may be embodied in other specific forms without departing from the spirit or essential attributes thereof. The present embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein.
Filing Document | Filing Date | Country | Kind |
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PCT/IL2015/050812 | 8/10/2015 | WO | 00 |